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Fabrication of pioneering 3D sakura-shaped metal-organic coordination polymers Cu@L-Glu phenomenal for signal amplification in highly sensitive detection of zearalenone

适体 化学 电化学 组合化学 纳米载体 纳米颗粒 水溶液中的金属离子 金属 电极 核化学 纳米技术 有机化学 材料科学 物理化学 生物 遗传学 药物输送
作者
Xingduo Ji,Chao Yu,Yilin Wen,Jun Chen,Yujie Yu,Chengli Zhang,Rufei Gao,Xinyi Mu,Junlin He
出处
期刊:Biosensors and Bioelectronics [Elsevier BV]
卷期号:129: 139-146 被引量:36
标识
DOI:10.1016/j.bios.2019.01.012
摘要

Low molecular weight pollutants from foods have aroused global attention due to their toxicity after long-time exposure. There is an increased demand for appropriate methods to detect these pollutants in foods. In this study, a brand-new type of nano metal–organic coordination polymers (MOCPs) nanocarriers (3D sakura-shaped copper (II) [email protected]L-glutamic acid (L-Glu)) has been first synthesized. We herein demonstrate a facile chelated method that allows the combination of copper (II) ions and L-Glu. A series of controlled experiments have revealed that the reaction time and the ratio of reactants played the crucial roles in affecting the morphology of the final product. 3D sakura-shaped [email protected]L-Glu combined with palladium-platinum nanoparticle (Pd-PtNPs) to obtain [email protected]L-Glu/Pd-PtNPs acting as the signal tag, which applied in electrochemical aptasensor for ultrasensitive detection of zearalenone (ZEN). A glassy carbon electrode was first modified with spherical Au-PANI-Au nanohybrids to enhance the conductivity and immobilize more amino modified ZEN aptamer. [email protected]L-Glu/Pd-PtNPs were labeled with Complementary DNA (partial matching with ZEN aptamer) to form bioconjugates for signal amplification. After the hybridization reaction of ZEN aptamer and the bioconjugates, a significant electrochemical signal from the catalysis of H2O2 by [email protected]L-Glu/Pd-PtNPs can be observed. ZEN competed with bioconjugates for binding to ZEN aptamer, resulting in decreased the electrochemical signal. Chronoamperometry was applied to record the final electrochemical signals. Under optimal conditions, the electrochemical aptasensor exhibited desirable sensitive detection of ZEN with a wide linearity ranging from 1 fg/mL to 100 ng/mL and a relatively low detection limit of 0.45 fg/mL (S/N = 3). Furthermore, the proposed electrochemical aptasensor shows excellent selectivity to the ZEN in the presence of possible interfering substances, and has potential application for ZEN detection in food samples.

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